SpaceX Starship

Last updated

Starship
SpaceX Starship ignition during IFT-5.jpg
Starship ignition during launch on its fifth flight
Function Super-heavy lift launch vehicle
Manufacturer
Country of origin
  • United States
Project costAt least US$5 billion [1]
Cost per launch$100 million (expendable) [2]
Size
Height
  • Block 1: 121.3 m (398 ft)
  • Block 2: 124.4 m (408 ft) [a]
Diameter9 m (30 ft)
Mass5,000 t (11,000,000 lb)
Capacity
Payload to LEO
Mass100–150 t (220,000–330,000 lb)
Volume1,000 m3 (35,000 cu ft)
Associated rockets
Derivative work Starship HLS
Comparable
Launch history
StatusIn development
Launch sites
Total launches
6
  • Block 1: 6
  • Block 2: 0
  • Block 3: 0
Success(es)
4
  • Block 1: 4
  • Block 2: 0
  • Block 3: 0
Failure(s)
2
First flight20 April 2023;19 months ago (2023-04-20)
Last flight19 November 2024;28 days ago (2024-11-19)
CH4 / LOX
SpaceX Starhopper.jpg
Starhopper under construction, March 2019
Starship sn5.jpg
A crane lifting Starship SN5, August 2020

The first tests started with the construction of the first prototype in 2018, Starhopper , which performed several static fires and two successful low-altitude flights in 2019. [157] SpaceX began constructing the first full-size Starship MK1 and Mk2 upper-stage prototypes before 2019, at the SpaceX facilities in Boca Chica, Texas, and Cocoa, Florida, respectively. [158] Neither prototype flew: Mk1 was destroyed in November 2019 during a pressure stress test and Mk2's Florida facility was deconstructed throughout 2020. [159] [68]

After the Mk prototypes, SpaceX began naming its new Starship upper-stage prototypes with the prefix "SN", short for "serial number". [160] No prototypes between SN1 and SN4 flew either—SN1 and SN3 collapsed during pressure stress tests, and SN4 exploded after its fifth engine firing. [161]

In June 2020, SpaceX started constructing a launch pad for orbital Starship flights. [54] The first flight-capable prototype, SN5, was cylindrical as it had no flaps or nose cone: just one Raptor engine, fuel tanks, and a mass simulator. [162] On 5 August 2020, SN5 performed a 150 m (500 ft) high flight and successfully landed on a nearby pad. [163] On 3 September 2020, the similar-looking Starship SN6 repeated the hop; [164] later that month, a Raptor vacuum engine underwent its first full duration firing at McGregor, Texas. [165]

SN8 to SN15

SN8 shortly after taking off, December 2020 SpaceX Starship SN8 launch as viewed from South Padre Island (cropped).jpg
SN8 shortly after taking off, December 2020
Computer animation depicting a successful high-altitude flight test

Starship SN8 was the first full-sized upper-stage prototype, though it lacked a heat shield. [166] It underwent four preliminary static fire tests between October and November 2020. [161] On 9 December 2020, SN8 flew, slowly turning off its three engines one by one, and reached an altitude of 12.5 km (7.8 mi). After SN8 dove back to the ground, its engines were hampered by low methane header tank pressure during the landing attempt, which led to a hard impact with the landing pad and subsequent explosion of the vehicle. [97]

Because SpaceX had violated its launch license and ignored warnings of worsening shock wave damage, the Federal Aviation Administration investigated the incident for two months. [167] During the SN8 launch, SpaceX ignored FAA warnings that the flight profile posed a risk of explosion. [167] [168] [169] FAA space division chief Wayne Monteith said SpaceX's violation was “inconsistent with a strong safety culture”, and criticized the company for proceeding with the launch "based on 'impressions' and 'assumptions,' rather than procedural checks and positive affirmations". [167]

On 2 February 2021, Starship SN9 launched to 10 km (6.2 mi) in a flight path similar to SN8. The prototype crashed upon landing because one engine did not ignite properly. [170] A month later, on 3 March, Starship SN10 launched on the same flight path as SN9. [171] The vehicle landed hard and crushed its landing legs, leaning to one side. [172] A fire was seen at the vehicle's base and it exploded less than ten minutes later, [173] potentially due to a propellant tank rupture. [172] On 30 March, Starship SN11 flew into thick fog along the same flight path. [174] The vehicle exploded during descent, [174] possibly due to excess propellant in a Raptor's methane turbopump. [175]

In March 2021, the company disclosed a public construction plan for two sub-orbital launch pads, two orbital launch pads, two landing pads, two test stands, and a large propellant tank farm. [176] The company soon proposed developing the surrounding Boca Chica Village, Texas, into a company town named Starbase. [176] Locals raised concerns about SpaceX's authority, power, and a potential threat for eviction through eminent domain. [177]

In early April, the orbital launch pad's fuel storage tanks began mounting. [54] SN12 through SN14 were scrapped before completion; SN15 was selected to fly instead, [178] due to improved avionics, structure, and engines. [173] On 5 May 2021, SN15 launched, completed the same maneuvers as older prototypes, and landed safely. [178] SN15 had a fire in the engine area after landing but it was extinguished. [173] According to a later report by SpaceX, SN15 experienced several issues while landing, including the loss of tank pressure and an engine. [179] :2

Integrated flight tests (2023–)

In June 2022, the Federal Aviation Administration determined that SpaceX must address more than 75 issues identified in the preliminary environmental assessment before integrated flight tests could start. [180]

First flight test

Starship during the first integrated flight attempt. Several engines failed on the first stage. StarshipLaunch (crop 2-3).jpg
Starship during the first integrated flight attempt. Several engines failed on the first stage.

In July 2022, Booster 7 tested the liquid oxygen turbopumps on all 33 Raptor engines, resulting in an explosion at the vehicle's base, which destroyed a pressure pipe and caused minor damage to the launchpad. [181] By the end of November, Ship 24 had performed 2 static test fires, [182] :20 while Booster 7 had performed 6 static test fires [183] [182] :20 and finally on 9 February 2023, a static fire with 31 engines at 50% throttle. [184] In January 2023, the whole Starship stack underwent a full wet dress rehearsal. [185]

After a launch attempt aborted on 17 April 2023, [186] Booster 7 and Ship 24 lifted off on 20 April at 13:33 UTC in the first orbital flight test. [187] Three engines were disabled during the launch sequence and several more failed during the flight. [188] The booster later lost thrust vectoring control of the Raptor engines, which led to the rocket spinning out of control. [188] The vehicle reached a maximum altitude of 24 mi (39 km). [189] Approximately 3 minutes after lift-off the rocket's autonomous flight termination system was activated, though the vehicle tumbled for another 40 seconds before disintegrating. [190] [191] [192] The first flight test blasted large amounts of sand and soil in the air, reaching communities within a 10.7 km (6.6 mi) radius. [193] [194] [195] A brushfire on nearby state parkland also occurred, burning 3.5 acres of state parkland. [196]

Second flight test

Starship during the second integrated flight attempt Starship-IFT2-ascent (cropped).jpg
Starship during the second integrated flight attempt

After the first test flight, SpaceX began work on the launch mount to repair the damage it sustained during the test and to prevent future issues. The foundation of the launch tower was reinforced and a water powered flame deflector was built under the launch mount. [197] Ship 25 and Booster 9 were rolled to the suborbital and orbital launch sites in May to undergo multiple tests. [198] [199]

On 18 November 2023, Booster 9 and Ship 25 lifted off the pad. [200] All 33 engines continued to function until staging, where the second stage separated by pushing itself away from the first stage using a hot-staging technique. [124] Following separation, the Super Heavy booster completed its flip maneuver and initiated the boostback burn before exploding following multiple successive engine failures. [124] [201] [202] Three and a half minutes into the flight at an altitude of ~90 km over the Gulf of Mexico, blockage in a liquid oxygen filter caused one of the engines to fail in a way that resulted in the destruction of the booster. [203]

The second stage continued until it reached an altitude of ~149 kilometres (93 mi), after over eight minutes of flight; prior to engine cutoff, telemetry was lost on the second stage. [124] SpaceX said that a safe command based on flight performance data triggered the flight termination system and destroyed the second stage, [124] prior to achieving its planned orbit or attempting re-entry. [204] It appeared to re-enter a few hundred miles north of the Virgin Islands, according to NOAA weather radar data. [205]

Third flight test

Video of Starship during the third flight test

Following the second flight test (which saw the loss of both stages), significant changes were implemented, including upgrading Starship's thrust vector control system to electric thrust vector control (TVC) [206] and measures to delay liquid oxygen (LOX) [206] venting until after Starship engine cutoff (SECO) has taken place.

Flight 3 launched from the SpaceX Starbase facility along the South Texas coast around 8:25 CDT on 14 March 2024, coincidentally the 22nd anniversary of its founding. [207] [208] Like IFT-2, all 33 engines on the booster ignited and stage separation was successful. [209] B10 conducted a boostback burn, however, the planned landing in the Gulf of Mexico was not successful, as it exploded at 462 m (1,516 ft) above the surface. [126]

The Starship spacecraft itself – after reaching space and orbital velocity – conducted several tests after engine cutoff, including initiating a propellant transfer demo and payload dispenser test. [210] [211] It attempted to re-enter the atmosphere, [126] [212] and at an altitude of around 65 km (40 mi), all telemetry from Ship 28 stopped, indicating a loss of the vehicle. [213] This flight test demonstrated a cryogenic propellant transfer, by transferring propellant from the Ship's header tanks into its main tanks while in space, a technology which is required for Starship HLS to exit Low Earth orbit (LEO). The result of this test was declared successful by NASA and SpaceX. Additional data analysis is occurring on the fluid dynamics such as slosh and boil-off of the propellant. [214] [215] [216]

Fourth flight test

The fourth flight test of the full Starship configuration launched on 6 June 2024, at 7:50 am CDT. [217] The goals for the test flight were for the Super Heavy booster to land on a 'virtual tower' in the ocean, and for the Ship to survive peak heating during atmospheric reentry. [120] The flight test was successful in both regards, with Super Heavy achieving a soft splashdown and Ship surviving atmospheric reentry and a controlled splashdown. [218]

Booster 12 is successfully caught by the launch tower during flight test 5 Starship Booster Landing on Mechzilla (54064036815).jpg
Booster 12 is successfully caught by the launch tower during flight test 5

Fifth flight test

In April 2024, Musk stated one of the goals was to attempt a booster tower landing based on successful booster performance in flight 4. Vehicle testing commenced in May 2024. [219] SpaceX claimed that B12 and S30 were ready to launch in early August, in advance of regulatory approval. [220] SpaceX flew S30 and B12 on 13 October 2024, with B12 returning to the launch site for a successful catch for the first time, and S30 successfully splashing down in the Indian Ocean. [221]

Sixth flight test

Ship 31 completed a successful cryogenic test in July 2024 and a static fire in September. [222] [223] Booster 13 completed similar tests in April and October. [224] Flight 6 was flown on November 19, 2024 with a water landing of the booster rather than a catch. [225] Flight 6 was the first to successfully conduct a Raptor engine relight in the vacuum of space, paving the way for payload deployments on future flights. [225] A stuffed toy banana served as the zero-g indicator, becoming Starship's first payload, though it remained within the vehicle for the duration of the flight. [225] Eric Berger claimed that, due to the success of the in-space relight, Starship would likely be "cleared to travel into orbit". [226]

Seventh flight test

The seventh flight test is expected to occur in early 2025 and will be the first flight of a Block 2 Starship. [227] As of December 2024, both vehicles have undergone cryogenic and static fire testing. [228] [229]

Cost and funding

SpaceX develops the Starship primarily with private funding. [230] [151] [1] SpaceX Chief Financial Officer Bret Johnsen disclosed in court that SpaceX has invested more than $3 billion into the Starbase facility and Starship systems from July 2014 to May 2023. [1] Elon Musk stated in April 2023 that SpaceX expected to spend about $2 billion on Starship development in 2023. [231] [232] In a 2024 response to a lawsuit, SpaceX stated that the cost of the Starship program was approximately $4 million per day. [233] :25–26 Adding that any day of delay to the Starship program represented a loss of $100,000. [233] :25–26

Musk has theorized that a Starship orbital launch might eventually cost SpaceX only $1 million to launch. [234] Eurospace's director of research Pierre Lionnet stated in 2022 that Starship's launch price to customers would likely be higher because of the rocket's development cost. [235]

As part of the development of the Human Landing System for the Artemis program, SpaceX was awarded in April 2021 a $2.89 billion fixed-price contract from NASA to develop the Starship lunar lander for Artemis III. [236] [237] Blue Origin, a bidding competitor to SpaceX, disputed the decision and began a legal case against NASA and SpaceX in August 2021, causing NASA to suspend the contract for three months until the case was dismissed in the Court of Federal Claims. [238] [239] [240] Two years later Blue Origin was awarded a $3.4 billion fixed-price contract for its lunar lander. [241]

In 2022, NASA awarded SpaceX a $1.15 billion fixed-price contract for a second lunar lander for Artemis IV. [237] The same year, SpaceX was awarded a $102 million five-year contract to develop the Rocket Cargo program for the United States Space Force. [242]

Launch history

Starship vehicles have been launched six times for flight tests over two years, resulting in four successes (66.67%), and two failures. Starship Block 1 has been launched six times between April 2023 to November 2024, with the ship being retired ahead of the seventh flight. [119] Block 1 boosters are expected to fly further into the future. [243]

Launch sites

1
2
3
4
2023

Launch outcomes

1
2
3
4
2023
2024
2025
2026
  •   Failure [i]
  •   Partial failure
  •   Success
  •   Planned

Booster landings

1
2
3
4
2023
2024
2025
2026
  •   Precluded
  •   Ocean failure
  •   Tower failure
  •   Ocean success [ii]
  •   Tower success
  •   No attempt

Ship landings

1
2
3
4
2023
2024
2025
2026
  •   Precluded
  •   Ocean failure
  •   Tower failure
  •   Ocean success [ii]
  •   Tower success
  •   No attempt

Booster Version

1
2
3
4
2023
2024
2025
2026

Ship Version

1
2
3
4
2023
2024
2025
2026




  1. SpaceX declared both launches a success
  2. 1 2 Any controlled flight to water, no recovery

Potential missions

SpaceX plans to use Starship to launch the second generation of satellites for SpaceX's Starlink system, which currently delivers high-speed internet to over 70 countries. [244] An analyst at financial services company Morgan Stanley stated development of Starship and Starlink are intertwined, with Starship's planned launch capacity enabling cheaper Starlink launches, and Starlink's profits financing Starship's development costs. [245] In deficit from its inception until the end of 2022, [246] Starlink was first reported to be cash flow positive in the first quarter of 2023, [247] [248] though Elon Musk said that Starlink had only reached "break-even cashflow" in 2023. [249] In December 2023, the FCC issued a final denial of a $885M Starlink subsidy because of Starlink's "continuing inability to successfully launch on the Starship rocket". [250]

Artemis Program

Artemis III launch profile of a human landing on the Moon, involving Starship HLS, Starship tanker variants, and Orion spacecraft Realistic Artemis 3 mission diagram labeled.png
Artemis III launch profile of a human landing on the Moon, involving Starship HLS, Starship tanker variants, and Orion spacecraft

Starship HLS was initially chosen by NASA as the sole lunar Human Landing System for the planned Artemis III and Artemis IV crewed missions, as part of the Artemis program. [251] [252] Starship HLS is to be launched into a low Earth orbit, and refueled by multiple Starship tanker spacecraft. [253] :4,5 Once fueled, it would perform a trans lunar injection burn and enter a near-rectilinear halo orbit [254] around the Moon, with a perilune of 1,500 km (930 mi) occurring over the north pole and an apolune of 70,000 km (43,000 mi) occurring over the south pole. [254] [253] :4,5 The Orion spacecraft would then dock with Starship HLS and two of its four crew would transfer into Starship HLS. [255] [253] :4,5 Starship HLS would then use its engines to make a powered descent and land near the lunar south pole. [253] :4,5 After the crew performs the surface portion of its mission, the HLS would ascend with the crew. [253] :4,5 The crew would then transfer into the Orion spacecraft and return to Earth. [253] :4,5

Astronomy

Astronomers have called to consider Starship's larger mass to orbit and wider cargo bay for proposed space telescopes such as LUVOIR, and to develop larger telescopes to take advantage of these capabilities. [256] [257] Starship's 9 m (30 ft) fairing width could hold an 8 m (26 ft) wide space telescope mirror in a single piece, [256] alleviating the need for complex unfolding such as that of the JWST's 6.5 m (21 ft) mirror, which added cost and delays. [257] Ariane 5 imposed a ~6,500 kg limit on the telescope's weight. [258] Starship's low launch cost could also allow probes to use heavier, more common, cheaper materials, such as glass instead of beryllium for large telescope mirrors. [257] [235] With a 5 t (11,000 lb) mirror built using similar methods to the Hubble Space Telescope's mirror, the JWST would represent only 10% of the mass deliverable by a (refueled) Starship to the Sun–Earth L2 point, and therefore minimizing the weight of the telescope would not have been a dominant design consideration. [257]

The National Academies of Science's 2020 survey recommended the Habitable Worlds Observatory (HWO); the space observatory, requiring a super heavy lift launch vehicle, will search for signs of life on exoplanets. [258] The HWO's team hopes for the success of big launchers due to their critical importance to the HWO's mission. [258] Lee Feinberg, NASA HWO lead architect [258] and JWST manager, [259] stays in communication with SpaceX to track Starship's progress and has visited them in 2024 for that same purpose. [258] The NASA Habitable Worlds Observatory will have a 6–8 meter mirror for now, but its design should be flexible to leverage launchers with potentially double the mass and volume by the time it launches in the 2040s. [258] Former NASA JPL architect Casey Handmer believes the HWO to be far too conservative compared to what is possible with Starship. [258] Handmer argues that Starship enables telescopes to scale up to the point of surface-level exoplanet imaging, perhaps big enough to detect seasonal migration patterns. [258]

Rocket cargo

In January 2022, SpaceX was awarded a $102 million five-year contract to develop the Rocket Cargo program for the United States Space Force. [242] The five-year contract is intended to "determine exactly what a rocket can achieve when used for cargo transport", [260] and will see the Air Force Research Laboratory collect data during commercial launches of Starship. [260] The contract includes an eventual demonstration mission with the launch and landing of a cargo-laden Starship in a point-to-point flight.

The Department of Defense has planned a test with Starship as part of its program to demonstrate the ability to rapidly deploy up to 100 tons of cargo and supplies, a capability it calls point to point delivery (P2PD). The test is envisioned to take place in FY25 or FY26. [261]

Mars Sample Return

In 2024, the NASA-ESA Mars Sample Return project, one of NASA's highest priority flagship projects, suffered a setback when an independent review board assessing the project's feasibility concluded that the project could not complete under its mission profile. In April 2024, the Administrator of NASA then announced that a new mission profile was needed for the project and that NASA would turn to industry for proposals, with responses due in fall 2024, and high emphasis on lower total cost and lower risk. [262] Starship was widely seen as a leading candidate to serve as a central component of the new mission profile architecture. [263] [264] [265]

Transportation

SpaceX has proposed using Starship for point-to-point flights (called "Earth to Earth" flights by SpaceX), traveling anywhere on Earth in under an hour. [266] [260] Musk stated that SpaceX would complete hundreds of cargo flights before launching with human passengers. [267]

Space colonization

According to SpaceX, Starship is intended to be able to land crews on Mars, [268] :120 though SpaceX has not published technical plans or designs about Starship's life support systems, radiation protection, docking system, or in-orbit refueling system for Mars. [269] The spacecraft would be launched to low Earth orbit and refueled in orbit before heading to Mars. [270] After landing on Mars, the Sabatier reaction could be used to synthesize liquid methane and liquid oxygen, Starship's fuel, in a power-to-gas plant. [271] The plant's raw resources would be Martian water and Martian carbon dioxide. [105] On Earth, similar technologies could be used to make carbon-neutral propellant for the rocket. [272] To date, there has been one proof of concept experiment (MOXIE) demonstrating the extraction of oxygen from Martian carbon dioxide, with George Dvorsky writing for Gizmodo commenting that we are not "remotely close" to turning this "into something practical". [273] [274]

SpaceX and Musk have stated their goal of colonizing Mars to ensure the long-term survival of humanity, [235] [275] with an ambition of having sent one million people to Mars by 2050. [276] In March 2022, he estimated that the first crewed Mars landing could occur in 2029. [277] This timeline has been criticized as unrealistic by Kevin Olsen, a physicist at the University of Oxford, England, who has said that "colony needs to become a factory" to produce air, fuel and water as it is "fundamentally impossible to create a completely closed environment in space", and that the technology to do so is "far, far behind the technology of space flight and habitation construction". [273] Serkan Saydam, a mining engineering professor from the University of New South Wales, Australia, stated that humanity currently lacks the necessary technology to establish a Martian colony, and will likely lack the capacity to establish a Martian city with one million people by 2050. [273]

Other missions

One future payload is the Superbird-9 communication satellite, which was Starship's first contract for externally made commercial satellites. [278] Another planned payload is the Starlab space station, which Starship will launch in a single piece. [279]

In the future, the spacecraft's crewed version could be used for space tourism—for example, for the third flight of the Polaris program. [280]

Research conducted by Project Lyra determined that with refueling in LEO, a Starship could send a spacecraft to Oumuamua with a journey taking 20 years. [281] A gravity assist would be required at Jupiter. [281]

Facilities

Testing and manufacturing

Ship 27, Ship 26 and Booster 10 forward section under construction in Starbase build site, March 2023 Bays + ships.jpg
Ship 27, Ship 26 and Booster 10 forward section under construction in Starbase build site, March 2023

Starbase consists of a manufacturing facility and launch site, [282] and is located at Boca Chica, Texas. Both facilities operate 24 hours a day. [18] A maximum of 450 full-time employees may be onsite. [121] :28 The site is planned to consist of two launch sites, one payload processing facility, one seven-acre solar farm, and other facilities. [121] :34–36 The company leases Starbase's land for the STARGATE research facility, owned by the University of Texas Rio Grande Valley. It uses part of it for Starship development. [283]

Raptor engines are tested at the Rocket Development facility in McGregor, Texas. The facility has two main test stands: one horizontal stand for both engine types and one vertical stand for sea-level-optimized rocket engines. [284] In the future, a nearby factory, which as of September 2021 was under construction, will make the new generation of sea-level Raptors while SpaceX's headquarters in California will continue building the Raptor Vacuum and test new designs. [284]

At Florida, a facility at Cocoa purifies silica for Starship heat-shield tiles, producing a slurry that is then shipped to a facility at Cape Canaveral. In the past, workers constructed the Starship MK2 prototype in competition with Starbase's crews. [68] The Kennedy Space Center, also in Florida, is planned to host other Starship facilities, such as a Starship launch site at Launch Complex 39A and a production facility at Roberts Road. This production facility is being expanded from "Hangar X", the Falcon rocket boosters' storage and maintenance facility. It will include a 30,000 m2 (320,000 sq ft) building, loading dock, and a place for constructing integration tower sections. [285] Adjacent to the Kennedy Space Center will be an additional launch site at Cape Canaveral Space Launch Complex 37, likely to service missions for the complex owner, the United States Space Force.

Launch sites

Starbase

Orbital launch mount A under construction in Starbase, August 2021 Starbase OLM construction 08-2021.jpg
Orbital launch mount A under construction in Starbase, August 2021

Starbase is planned to host two launch sites, named Pad A and Pad B. [121] :34 A launch site at Starbase has large facilities, such as a tank farm, an orbital launch mount, and an integration tower. [121] Smaller facilities are present at the launch site: tanks surrounding the area containing methane, oxygen, nitrogen, helium, hydraulic fluid, etc.; [121] :161 subcoolers near the tank farm cool propellant using liquid nitrogen; and various pipes are installed at large facilities. [54] Each tank farm consists of eight tanks, enough to support one orbital launch. [54] The current launch mount on Pad A has a water-powered flame diverter, 20 clamps holding the booster, and a quick disconnect mount providing liquid fuel and electricity to the Super Heavy booster before it lifts off. [54]

The integration tower or launch tower consists of steel truss sections, a lightning rod on top, [286] and a pair of mechanical arms that can lift, catch and recover the booster. [54] The decision to catch the booster with the arms was made to reduce the rocket's mass and mechanical complexity by removing the need for landing legs, as well as enabling more rapid reuse by placing the rocket directly back on the launchpad. [179] :2 The mechanical arms are attached to a carriage and controlled by a pulley at the top of the tower. [54] The pulley is linked to a winch and spool at the base of the tower using a cable. [54] Using the winch and the carriage, the mechanical arms can move vertically, with support from bearings attached at the sides of the carriage. [54] A linear hydraulic actuator moves the arms horizontally. Tracks are mounted on top of arms, which are used to position the booster or spacecraft. [54] The tower is mounted with a quick disconnect arm extending to and contracting from the Starship spacecraft; its functions are similar to the quick disconnect mount that powers the booster. [54]

Florida

Starship launch tower construction can be seen (right) at LC-39A in January 2024 as Falcon 9 launches continue to take place Axiom-3 Launch (KSC-20240118-PH-CMS01 0022) Cropped.jpg
Starship launch tower construction can be seen (right) at LC-39A in January 2024 as Falcon 9 launches continue to take place

SpaceX has been constructing a Starship launch pad at Kennedy Space Center Launch Complex 39A (LC-39A) since 2021. The site was leased to the company in 2014 and is used to launch Falcon 9 rockets. [285] [287] In 2024, the Federal Aviation Administration began the process of preparing an environmental impact statement (EIS) evaluating the potential impacts of the new infrastructure and a higher launch cadence of up to 44 per year at LC-39A. [288]

In June 2024, Blue Origin and United Launch Alliance (ULA) provided comments as part of the EIS process, both objecting to the impact that Starship launch operations may have on their own activities at the site. [289] Blue Origin suggested several mitigations, including allowing other operators to object to a Starship launch that would conflict with one of its own, limiting Starship operations to particular times, or expanding the number of launchpads in the area to reduce the impact of conflicting launches. [290] ULA suggested regulators prevent Starship from launching in Florida altogether because a fully fueled Starship would require an evacuation zone so large that it would prevent other operators from using their facilities, and the noise generated by repetitive launches could be injurious to those who live or work nearby. [291] [292] Elon Musk suggested that the two companies' comments were disingenuous and that their true motivation was to impede SpaceX's progress by lawfare. [289]

The company has also proposed building another Starship launch pad at the nearby Cape Canaveral Space Launch Complex 37 (SLC-37) which became vacant in 2024 after the retirement of the Delta IV rocket. That year, the United States Space Force began the process of preparing an EIS evaluating the potential impacts of new infrastructure and a launch cadence of up to 76 times per year at SLC-37. [292] [293] [294]

Both EIS processes must be complete before SpaceX will be cleared to launch Starship from Florida, which likely won't occur until late 2025. [289] The towers and mechanical arms at the sites should be similar to the one at Starbase, with improvements gained from the experience at Boca Chica. [285]

Responses to Starship development

In order to compete with SpaceX and close their technological gap with the company, the China Aerospace Science and Tech Corp and other aerospace actors in China have reportedly been working on their own equivalent of Starship – the Long March 9 super-heavy lift rocket, [295] which is also designed to eventually be fully reusable. [296] In 2021, the China Academy of Launch Vehicle Technology (CALT) showed a rendered video of a rocket noted to be "strikingly" similar to Starship in appearance and function. [297] In a 2022 event organized by the International Astronautical Federation and the Chinese Society of Astronautics, the CALT communicated performing research on a crewed launch vehicle powered by LOX-methane propellant, with a second stage that was very similar to Starship's. [298]

SpaceNews noted that the Chinese start-up Space Epoch and engine maker Jiuzhou Yunjian were developing a smaller Starship-like rocket with a methane-LOX engine similar to Raptor, stainless steel tanks and an iterative design. [299] Starship's reusability and stainless-steel construction might also have inspired Project Jarvis, a reusable upper stage for Blue Origin's New Glenn heavy-lift launch vehicle intended to replace New Glenn's expendable upper stage in the future. [300]

In 2021, members of Congress voiced concerns about the FAA's response to SpaceX's launch license violations following the explosion of SN8, calling on the FAA to "resist any potential undue influence on launch safety decision-making". [169] In 2023, prior to Starship's second test flight, SpaceX's vice president and ex-NASA engineer Bill Gerstenmaier made statements at the U.S. Senate on the importance of innovation in light of "strategic competition from state actors like China". [301] [302] [303] He said SpaceX was under a contract with NASA to use Starship to land American astronauts on the moon before China does, [304] [301] and that the Starship test flights campaign was being held up by "regulatory headwinds and unnecessary bureaucracy" unrelated to public safety. [302] [305]

Following the second integrated flight test of Starship, the Government Accountability Office (GAO) made recommendations to the FAA to "improve its mishap investigation process", finding that historically they have allowed the launch operator to conduct their own investigation with the FAA supervising. [306]

Several environmental groups have filed lawsuits against the FAA and SpaceX, claiming that environmental reviews were bypassed due to Musk's political and financial influence. [307]

Notes

  1. When using a Block 1 Booster, height is only 123.1 m (404 ft).
  2. Gross mass is the total of the propellant mass (1,200,000 kg) and approximate empty mass (100,000 kg).
  3. Super Heavy dry mass: 200 t (440,000 lb); Starship dry mass: 100 t (220,000 lb); Super Heavy propellant mass: 3,400 t (7,500,000 lb); [4] Starship propellant mass: 1,200 t (2,600,000 lb). [11] The total of these masses is about 5,000 t (11,000,000 lb).
  4. 78% of 3,400 t (7,500,000 lb) is 2,700 t (6,000,000 lb) of liquid oxygen.
  5. 78% of 1,500 t (3,300,000 lb) is 1,170 t (2,580,000 lb) of liquid oxygen.

See also

Related Research Articles

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